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首页> 外文期刊>International journal of hydrogen energy >High temperature hydrogenation of Ti-V alloys: The effect of cycling and carbon monoxide on the bulk and surface properties
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High temperature hydrogenation of Ti-V alloys: The effect of cycling and carbon monoxide on the bulk and surface properties

机译:Ti-V合金的高温加氢:循环和一氧化碳对体积和表面性能的影响

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In the present work, the high temperature (425-575 degrees C) hydrogen storage properties of Ti-V alloys have been studied, both at static conditions and in a flow of hydrogen gas. The selected isothermal temperature range is considered as an optimal condition for hydrogen sorption enhanced steam reforming. When hydrogenation and dehydrogenation were performed in pure hydrogen gas and in vacuum, a large reversible hydrogen capacity of 3.95 wt. % H was obtained, demonstrating completeness of the formation and decomposition of (Ti,V)-dihydrides. However, when cycling was performed in a flow of hydrogen gas, the reversible hydrogen capacity decreased to similar to 2 wt. % H caused by the formation of stable lower (Ti,V)-hydrides. A further decrease in the reversible hydrogen storage capacity took place when pure hydrogen gas was replaced by a mixture of hydrogen and carbon monoxide CO. This decrease was caused by the formation of an oxygen rich layer on the surface of the alloy, which was partially blocking the hydrogen exchange between the surface and the bulk of the sample. Copyright (c) 2015, Hydrogen Energy Publications, LLC. Published by Elsevier Ltd. All rights reserved.
机译:在目前的工作中,已经研究了在静态条件下和氢气流中Ti-V合金的高温(425-575摄氏度)储氢性能。所选的等温温度范围被认为是氢吸附增强蒸汽重整的最佳条件。在纯氢气和真空中进行氢化和脱氢时,可逆氢容量为3.95 wt。%。得到%H,表明(Ti,V)-二氢化物的形成和分解的完成。然而,当在氢气流中进行循环时,可逆氢气容量降低至类似于2wt。%。由稳定的低级(Ti,V)氢化物的形成引起的%H.当用氢气和一氧化碳CO的混合物代替纯氢气时,可逆储氢能力进一步下降。这种下降是由于在合金表面形成了富氧层而造成的,该富氧层被部分阻塞表面和大部分样品之间的氢交换。 Hydrogen Energy Publications,LLC版权所有(c)2015。由Elsevier Ltd.出版。保留所有权利。

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